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Resilience of IoT Systems Against Edge-Induced Cascade-of-Failures: A Networking Perspective

机译:物联网系统对边缘引发的故障级联的恢复能力:网络视角

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Internet of Things (IoT) is a networking paradigm that interconnects physical systems to the cyber world, to provide automation and intelligence via interdependent links between the two domains. Such interdependence renders IoT systems vulnerable to random failures, e.g., broken communication links or crashed cyber instances, because a single incident in one domain can develop into a cascade-of-failures across domains, which dissolves the network structure, and has devastating consequences. To answer how robust an IoT system is, this paper studies its resilience by examining the impact of edge- and jointly-induced cascades, that is, a sequence of failures caused by randomly broken physical links (and simultaneous failing cyber nodes). Resilience of an IoT system is quantified by two new metrics, the critical edge disconnecting probability phi(cr), i.e., the maximum intensity of random failures the system can withstand, and the cascade length tau(cf), i.e., the lifetime of a cascade. For IoT systems with Poisson degree distributions, we derive exact solutions for the critical disconnecting probability fcr, above which an edgeinduced cascade will completely fragment the network. We also find that the critical condition fcr marks a dichotomy of the expected cascade length E(tau(cf)): for the super-critical (phi > phi(cr)) scenario, we obtain E(tau(cf)) similar to exp(1 - phi) through analysis, while for the subcritical scenario, we observe E(tau(cf)) similar to exp(1/1 - phi) through simulations. With these results, the final outcome of a cascade can be anticipated upon the initial failures, while the reaction window of time-sensitive countermeasures can be obtained before a cascade fully unfolds.
机译:物联网(IoT)是一种将物理系统与网络世界互连的网络范例,可通过两个域之间相互依赖的链接来提供自动化和智能。这种相互依赖关系使IoT系统容易遭受随机故障(例如通信链路中断或网络实例崩溃)的影响,因为一个域中的单个事件可能会演变成跨域的级联故障,这会破坏网络结构并带来灾难性的后果。为了回答物联网系统的强大功能,本文通过检查边缘和联合诱发的级联的影响(即由随机断开的物理链路(以及同时发生故障的网络节点)导致的一系列故障)来研究其弹性。物联网系统的恢复能力通过两个新指标进行量化:临界边缘断开概率phi(cr)(即系统可以承受的最大随机故障强度)和级联长度tau(cf)(即系统的寿命)。级联。对于具有泊松度分布的物联网系统,我们为临界断开概率fcr导出了精确的解决方案,在此之上,边缘诱发的级联将完全使网络破碎。我们还发现临界条件fcr标记了预期级联长度E(tau(cf))的二分法:对于超临界(phi> phi(cr))场景,我们获得与以下相似的E(tau(cf)):通过分析可以得出exp(1-phi),而对于次临界情况,我们可以通过仿真观察到与exp(1 / 1-phi)类似的E(tau(cf))。有了这些结果,级联的最终结果可以在初始故障时预期,而在级联完全展开之前可以获得对时间敏感的对策的反应窗口。

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